US20020061144A1 - Slide guide device for presses - Google Patents
Slide guide device for presses Download PDFInfo
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- US20020061144A1 US20020061144A1 US09/993,052 US99305201A US2002061144A1 US 20020061144 A1 US20020061144 A1 US 20020061144A1 US 99305201 A US99305201 A US 99305201A US 2002061144 A1 US2002061144 A1 US 2002061144A1
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- United States
- Prior art keywords
- slide
- gib
- contact surface
- guide device
- cavity
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C29/00—Bearings for parts moving only linearly
- F16C29/001—Bearings for parts moving only linearly adjustable for alignment or positioning
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B30—PRESSES
- B30B—PRESSES IN GENERAL
- B30B15/00—Details of, or accessories for, presses; Auxiliary measures in connection with pressing
- B30B15/04—Frames; Guides
- B30B15/041—Guides
Definitions
- the present invention relates to a slide guide device for a press. More specifically, the present invention relates to a slide guide device that guides a slide with high precession during pressing operations.
- a press includes a slide.
- a copper alloy liner serves as a slide surface.
- the press includes an iron gib disposed on a frame opposite the slide surface. During operation, the liner and the gib slide against each other to guide the slide along the frame.
- An object of the present invention is to provide a slide guide device for a press that overcomes the problems and difficulties described above.
- the present invention relates to a slide guide device for a press which guides a slide in a cycle.
- the slide guide device eliminates misalignment caused by eccentric forces and prevents eccentric contact between the slide and a gib.
- the slide includes at least a first spherical shoe having at least a first guide surface.
- the gib includes at least a first sliding surface opposite the first guide surface. During operation, the spherical shoe rotates relative to the slide to ensure close alignment between the first guide surface and the sliding surface.
- a wedge supporting the gib allows rapid and easy alignment with the slide.
- a slide guide device for a press machine comprising: a slide, at least a first cavity on a first side of the slide, at least a first interface element, first means for rotatably retaining the first interface element in the first cavity, at least a first contact surface on the first interface element, at least a first gib opposite the slide and the first cavity, at least a first slide surface on the first gib, and first means for rotatably aligning the first contact surface with the first slide surface guiding and aligning the slide with the first gib during a cycle, thereby preventing an eccentric slide misalignment during the cycle and increasing press precision.
- a slide guide device for a press machine further comprising: at least a second cavity on a second side the slide, at least a second interface element, second means for rotatably retaining the second interface element in the second cavity, at least a second contact surface on the second interface element, at least a second gib opposite the slide and the second cavity, at least a second slide surface on the second gib, and second means for rotatably aligning the second contact surface with the second slide surface guiding and aligning the slide with the second gib during the cycle, thereby preventing the eccentric slide misalignment and increasing the press precision.
- a slide guide device for a press machine further comprising: at least a first clearance between the first contact surface and the first slide surface, at least a second clearance between the second contact surface and the second slide surface, and means for slidably adjusting and fixing the first and the second clearance and retaining each respective the first and the second clearance at a selected optimum clearance thereby maintaining alignment of the slide easily guiding the slide in the cycle.
- the means for slidably adjusting and fixing includes the first gib
- the first gib has at least a first wedge shape
- at least a first support element in the means for slidably adjusting and fixing the first support element between the first gib and a frame of the press machine
- the first support element has a second wedge shape, the second wedge shape complementary to the first wedge shape, the first support element adjustable along the frame and fixable relative to the first gib and the frame
- the means for slidably adjusting and fixing effective to slide the first support element relative to the first gib and the frame, create the optimum clearance, and fix the first and the second clearance at the optimum clearance, whereby the slide easily maintains the optimum clearance during the cycle.
- a slide guide device for a press machine wherein: the at least first contact surface and the at least first slide surface are flat, the at least second contact surface and the at least second slide surface are flat, the first slide surface at a first angle to an axis of the slide, the axis extending linearly from the first gib, through the slide, to the second gib, and the second slide surface at a second angle to the axis of the slide.
- a slide guide device for a press machine wherein: the first slide surface is perpendicular to the axis, and the second slide surface is perpendicular to the axis.
- a slide guide device for a press machine further comprising: at least a third cavity on the first side of the slide, at least a third interface element, the first means for rotatably retaining also rotatably retaining the third interface element in the third cavity, at least a third contact surface on the third interface element, the first gib opposite the first and the third cavity, at least a third slide surface on the first gib, and the first means for rotatably aligning also rotatably aligning the third contact surface with the third slide surface during the cycle, thereby preventing the eccentric slide misalignment and a lateral slide misalignment during the cycle.
- a slide guide device for a press machine further comprising: at least a fourth cavity on the second side of the slide, at least a fourth interface element, the second means for rotatably retaining also rotatably retaining the fourth interface element in the fourth cavity, at least a fourth contact surface on the fourth interface element, the second gib opposite the second and the third cavity, at least a fourth slide surface on the second gib, and the second means for rotatably aligning also rotatably aligning the fourth contact surface with the fourth slide surface during the cycle, thereby preventing the eccentric slide misalignment and the lateral slide misalignment during the cycle.
- a slide guide device for a press machine further comprising: at least a third clearance between the third contact surface and the third slide surface, at least a fourth clearance between the fourth contact surface and the fourth slide surface, and means for slidably adjusting and fixing including means for slidably adjusting and fixing the third and the fourth clearance and retaining each respective the third and the fourth clearance at the selected optimum clearance thereby maintaining alignment of the slide in the cycle.
- a slide guide device for a press machine wherein: the at least third contact surface and the at least third slide surface are flat, the at least fourth contact surface and the at least fourth slide surface are flat, the first slide surface and the third slide surface at a third angle to the axis of the slide, and the second slide surface and the fourth slide surface at a fourth angle to the axis of the slide.
- a slide guide device for a press machine wherein: the third angle is a first acute angle, and the fourth angle is a second acute angle.
- a slide guide device for a press machine wherein: the third angle is a first obtuse angle, and the fourth angle is a second obtuse angle.
- a slide guide device for a press machine wherein: the first contact surface is at a first 120-degree angle to the third contact surface, and the second contact surface is at a second 120-degree angle to the fourth contact surface.
- a slide guide device for a press machine wherein: the first and the second 120-degree angles project away from the slide along the axis.
- a slide guide device for a press machine wherein: the first and the second 120-degree angles project toward the slide along the axis.
- a slide guide device for a press machine further comprising: at least a fifth contact surface on the first interface element, the first contact surface at a third obtuse angle to the fifth contact surface, at least a sixth contact surface on the second interface element, the second contact surface at a fourth obtuse angle to the sixth contact surface, a fifth slide surface on the first gib opposite the fifth contact surface, a sixth slide surface on the second gib opposite the sixth contact surface, the first means for rotatably aligning also including means for simultaneously and rotatably aligning the fifth contact surface with the fifth slide surface, and the second means for rotatably aligning also including means for simultaneously and rotatably aligning the sixth contact surface with the sixth slide surface.
- a slide guide device for a press machine wherein: the third obtuse angle is 120 degrees, and the fourth obtuse angle is 120 degrees.
- FIG. 1 is a front view of a press.
- FIG. 2 is a horizontal cross-section of a gib in a first embodiment of the present invention.
- FIG. 3 is a horizontal cross-section of a gib in a second embodiment.
- FIG. 4 is a detail drawing of a gib section in the second embodiment.
- FIG. 5 is a horizontal cross-section of a gib in a third embodiment.
- FIG. 6 is a detail drawing of a gib section in a third embodiment.
- FIG. 7 is a horizontal cross-section of a gib in a fourth embodiment.
- FIG. 8 is a detail drawing of a gib section in a fourth embodiment.
- a press 50 includes a frame 1 .
- Frame 1 supports a bed 51 .
- Frame 1 includes a left side frame and a right side frame (both not numbered).
- a pair of stays 19 join the left side frame and the right side frame. Stays 19 provide additional stability to press 50 during operation.
- a bolster 3 is disposed on bed 51 opposite slide 2 a .
- a slide 2 a is slidably operable along frame 1 relative to bolster 3 and to bed 51 .
- Slide 2 a is connected to a connecting rod 4 and a crank shaft (not shown). Connecting rod 4 and the crank shaft form a crank mechanism for operating slide 2 a .
- the crank mechanism reciprocates slide 2 a relative to bolster 3 .
- a pair of gibs 5 a , 6 a on frame 1 are located on respective left and right side frame members opposite slide 2 a .
- Spherical shoes 7 , 8 , 9 , 10 are disposed on slide 2 a , as will be explained.
- Spherical shoes 7 , 8 and gib 5 a are on a first side of slide 2 a .
- Spherical shoes 9 , 10 and gib 6 a are on the second side of slide 2 a .
- gibs 5 a , 6 a engage respective spherical shoes 7 , 8 , 9 , 10 to guide slide 2 a upward and downward on frame 1 .
- a pair of gib holders 13 , 14 on frame 1 secure gib 5 a relative to slide 2 a , as will be explained.
- An engagement section 13 a is on gib holder 13 .
- An engagement section 14 a is on gib holder 14 .
- Engagement sections 13 a , 14 a engage respective grooves (shown but not numbered) on frame 1 .
- Engagement sections 13 a , 14 a align respective gib holders 13 , 14 to frame 1 .
- Bolts (not shown) secure gib holders 13 , 14 to frame 1 .
- a hollow screw 15 ′ is screwed into gib holder 13 .
- a hollow screw 15 ′′ is screwed into gib holder 14 .
- a bolt 16 ′ extends through hollow screw 15 ′.
- a bolt 16 ′′ extends through hollow screw 15 ′′.
- Bolts 16 ′, 16 ′′ secure hollow screws 15 ′, 15 ′′ to respective gib holders 13 , 14 .
- An end of bolt 16 ′′ extends through hollow screw 15 ′′ in gib holder 14 .
- a wedge 12 threadably engages the end of bolt 16 ′′.
- Bolt 16 ′′ slidably retains wedge 12 relative to gib holders 13 , 14 .
- hollow screw 15 ′′ and bolt 16 ′′ threadably control and position wedge 12 relative to gib holder 14 .
- An end of bolt 16 ′ extends through hollow screw 15 ′ in gib holder 13 .
- Gib 5 a threadably engages the end of bolt 16 ′.
- Bolt 16 ′ slidably retains gib 5 a relative to gibe holder 13 .
- hollow screw 15 ′ and bolt 16 ′ threadably control and position gib 5 a relative to gib holder 13 .
- Wedge 12 between gib 5 a and frame 1 , has a tapered shape that matches a tapered shape of gib 5 a .
- Wedge 12 supports gib 5 a .
- Wedge 12 and gib 5 a slidably engage and allow easy adjustment of gib 5 a relative to slide 2 a .
- bolts 17 secure wedge 12 and gib 5 a to frame 1 .
- a liner 11 is secured with at least one screw (not shown) on an outer surface of gib 5 a between gib 5 a and slide 2 a .
- Liner 11 is typically a Teflon-based impregnated porous bi-metal, but may be any convenient wear resistant and slippery material.
- liner 11 is plate-shaped affixed vertically along gib 5 a.
- At least one spherical cavity 18 is on slide 2 a opposite gib 5 a .
- Spherical cavity 18 has a concave hemispheric shape.
- Spherical shoe 7 is positioned in spherical cavity 18 .
- Spherical shoe 7 has a convex hemispheric section which matches the concave hemispheric shape of spherical cavity 18 .
- Spherical shoe 7 has a flat section opposite the hemispheric section. During assembly, the flat section of spherical shoe 7 contacts liner 11 . During operation, the flat section of spherical shoe 7 slidably contacts liner 11 . During operation, when eccentric forces occur, the hemispheric section of spherical shoe 7 adjusts relative to spherical cavity 18 to maintain the flat section parallel to liner 11 and gib 5 a , thereby eliminating line contacts.
- Gib 6 a is fixed relative to frame 1 .
- gib 5 a and gib 6 a increase the operational precision of press 50 and guide slide 2 a during a slide cycle.
- An engagement section 14 a ′ on gib 6 a fits into at least one groove formed (shown but not numbered) in frame 1 .
- at least one additional bolt 17 secures gib 6 a to frame 1 .
- Gibs 5 a , 6 a each include two comer guide surfaces (shown but not numbered) opposite slide 2 a .
- the guide surfaces on gib 5 a are opposite two respective comers of slide 2 a .
- the guide surfaces on gib 6 a are opposite the respective other two comers of slide 2 a .
- the four comers of slide 2 a operate parallel to their respective comer guide surface of gibs 5 a , 6 a.
- a set of shoes 23 is affixed to slide 2 a on each comer of slide 2 a .
- Shoes 23 are opposite respective comer guide surface on gibs 5 a , 6 a .
- slide 2 a is easily and guidably restrained along a left/right axis by spherical shoes 7 , 8 , 9 , and 10 , and along a forward/back axis by shoes 23 .
- precision operation is easily achieved without increased operational costs or the need for precision machining.
- bolt 17 secures gib 6 a to frame 1 .
- Spherical shoes 7 , 8 , 9 , and 10 are installed within their respective cavities 18 on opposite sides of slide 2 a .
- the now-assembled slide 2 a is placed in frame 1 along gib 6 a .
- Wedge 12 and gib 5 a are assembled opposite slide 2 .
- Wedge 12 and gib 5 a are positioned and adjusted using respective hollow screws 15 ′, 15 ′′ and bolts 16 ′, 16 ′′ while maintaining even contact between liners 11 and spherical shoes 7 , 8 , 9 , and 10 .
- additional bolts 17 secure wedge 12 and gib 5 a to frame 1 .
- a second alternative embodiment of the present invention includes a gib holder 14 ′ and gib holders 13 , 14 .
- Engagement section 13 a is located on gib holder 13 .
- Engagement section 14 a is located on gib holder 14 .
- An engagement section 14 a ′′ is located on gib holder 14 ′.
- Engagement sections 13 a , 14 a engage groves (shown but not numbered) on one side of frame 1 .
- Engagement sections 13 a , 14 a align respective gib holders 13 , 14 to frame 1 .
- Gib holders 13 , 14 align and support a gib 5 b , relative to frame
- Engagement section 14 a ′′ aligns gib holder 14 ′ with frame 1 .
- Gib holder 14 ′ aligns and supports a gib 6 b relative to frame 1 .
- gibs 5 b , 6 b precisely and reliably guide slide 2 b along frame 1 , as will be explained.
- Engagement section 14 a ′′ engages an engagement groove (shown but not numbered) on frame 1 opposite engagement sections 13 a , 14 a .
- a hollow screw 15 ′′′ threadably engages gib holder 14 ′.
- a bolt 16 ′′′ is inserted into hollow screw 15 ′′′.
- An end of bolt 16 ′′′ threadably engages gib 6 b to allow adjustment of gib 6 b relative to frame 1 .
- at least one bolt 17 fixes gib 6 b to frame 1 .
- An abutting section 6 a ′ on frame 1 opposite gib 6 b resists pressure from bolt 16 ′′′ and supports gib 6 b during assembly and operation.
- hollow screw 15 ′ is screwed into gib holder 13 .
- Hollow screw 15 ′′ is screwed into gib holder 14 .
- Bolt 16 ′ is inserted into hollow screw 15 ′.
- Bolt 16 ′′ is inserted into hollow screw 15 ′′.
- An end of bolt 16 ′ screws into wedge 12 to join gib holder 13 to wedge 12 .
- an end of hollow screw 15 ′ helps to position wedge 12 .
- Bolt 16 ′ secures hollow screw 15 ′ to gib holder 13 .
- hollow screw 15 ′ and bolt 16 ′ secure wedge 12 relative to gib holder 13 .
- An end of bolt 16 ′′ is screwed into gib 5 b to join gib holder 14 to gib 5 b .
- an end of hollow screw 15 ′′ positions gib 5 b .
- Bolt 16 ′′ secures hollow screw 15 ′′ to gib 5 b .
- hollow screw 15 ′′ and bolt 16 ′′ secure gib 5 b relative to gib holder 14 , wedge 12 and slide 2 b .
- at least one bolt 17 secures gib 5 b and wedge 12 to frame 1 .
- a first pair of liners, 11 , 11 are secured to gib 5 b opposite slide 2 b .
- a second pair of liners (not shown) is secured to gib 6 b in a similar manner.
- Liners 11 , 11 have plate-like shapes and are vertically affixed along gibs 5 b , 6 b.
- Each gib 5 b , 6 b has two contact surfaces extending parallel along slide 2 b . Liners 11 are located on the respective contact surface along gib 5 b and 6 b .
- Slide 2 b has contact surfaces corresponding to the contact surfaces on gibs 5 b , 6 b . The contact surfaces on gibs 5 b , 6 b and slide 2 b slide parallel to each other to allow easy and precise movement of slide 2 b.
- pairs of spherical shoes 7 , 7 and 9 , 9 rotatably fit within corresponding spherical cavities 18 on slide 2 b .
- the flat sections of spherical shoes 7 , 7 contact liners 11 on gib 5 b and slide freely.
- the flat sections of spherical shoes 9 , 9 similarly contact liners 11 on gib 6 b and slides freely.
- the spherical surface of spherical shoes 7 , 7 , and 9 , 9 rotate within cavities 18 to allow the entire surface of their respective flat sections to remain parallel to their respective liners 11 .
- the contact surfaces on gibs 5 b , 6 b correspond to the surfaces of each pair of liners 11 , 11 .
- An angle alpha ( ⁇ ) is an angle between the contact surface (and of the liners 11 ).
- Angle alpha ( ⁇ ) is selected based upon the state of eccentric loads during pressing operations.
- the forces acting on each contact surface can be analyzed, based on the slope of the contact surface.
- the forces can be broken down into a force providing restriction along a left-right axis of slide 2 b and a force providing restriction along a forward-backward axis of slide 2 b .
- slide 2 b is restricted along the left-right axis and the forward-backward axis by gibs Sb, 6 b.
- angle alpha ( ⁇ ) is approximately 120 deg.
- the eccentric load along the left-right axis of slide 2 b is larger than the eccentric load along the front-back axis.
- the projected area along the left-right axis of the guide surfaces is greater than that along the front-back axis.
- angle alpha ( ⁇ ) is 120 deg, the cosine and sine functions indicate that the ratio of projected areas is ⁇ square root ⁇ 3 (square root of 3): 1, i.e., approximately 1.7:1.
- a third embodiment of the present invention includes a pair of gibs 5 c , 6 c .
- Gibs 5 c , 6 c have a generally concave shape relative to a slide 2 c .
- gibs 5 c , 6 c guide a slide 2 c during pressing operations.
- respective slides 2 b , 2 c have opposite (convex/concave) shapes relative to respective supporting gibs 5 b , 6 b and 5 c , 6 c . There are no other structural differences.
- angle alpha ( ⁇ ) between respective liners 11 , 11 is also approximately 120 deg.
- angle alpha ( ⁇ ) between respective liners 11 , 11 is also approximately 120 deg.
- a benefit does exist in the second embodiment when slide 2 c reaches a temperature higher than a temperature of gibs 5 c , 6 c .
- Such a temperature difference permits thermal deformation of slide 2 c that is greater than a thermal deformation of gibs 5 c , 6 c .
- the second embodiment provides greater compensation for thermal deformation.
- the present invention is easily adaptable to both precision pressing operations and variable operating environments.
- a fourth embodiment of the present invention includes a slide 2 d operating between a pair of gibs 5 d , 6 d .
- a pair of bolt 17 , 17 secures respective gib 5 d , 6 d to frame 1 on opposite sides of slide 2 d .
- a set of screws (not shown) secure a set of liners 11 , 11 to gib 6 d .
- Another set of screws (not shown) secure a second set of liners 11 , 11 to gib 5 d .
- a bolt 22 secures each block 21 , 21 to each side of slide 2 d opposite respective gibs 5 d , 6 d.
- Spherical cavities 18 , 18 are disposed in respective blocks 21 , 21 .
- a spherical shoe 20 rotatably fits within each block 21 .
- a flat sections on each spherical shoe 20 , 20 allows sliding contact with respective liners 11 , 11 on each gib 5 d , 6 d , as will be explained.
- gibs 5 d , 6 d and wedge 12 are narrower than in the previous embodiments. Similarly, gib holders 13 , 14 are smaller in overall dimension.
- gib 6 d sits in a groove (shown but not numbered) in frame 1 .
- a single bolt 17 threadably secures gib 6 d to frame 1 opposite slid 2 d .
- a single bolt 17 similarly secures and fixes wedge 12 and gib 5 d to frame 1 .
- An assembly method for the fourth embodiment is similar to the assembly methods for the second and third embodiments.
- bolts 22 , 22 secure respective blocks 21 , 21 to slide 2 d .
- Spherical shoes 20 , 20 are then inserted into respective cavities 18 , 18 .
- Gib 6 is secured to frame 1 and receives the assembled slide 2 d .
- Gib holders 13 , 14 , wedge 12 and gib 5 are installed and adjusted.
- bolts 17 secure wedge 12 and gib 5 d to frame 1 .
- gibs 5 d , 6 d are formed in a general ‘V-shape.’
- a liner 11 is positioned on each side of the V-shape.
- Each shoe 20 provides two corresponding contact surfaces opposite each liner 11 .
- An angle beta ( ⁇ ) is defined between each side of the V-shape.
- Angle beta ( ⁇ ) is approximately 120 degrees.
- each shoe 20 replaces previous multiple shoes thereby reducing cost while maintaining precision.
- the multiple spherical shoes from the second and the third embodiments are moved as close together as possible and combined.
- the fourth embodiment is particularly advantageous for providing precision operations where space is limited and press 50 or a slide 2 d must be small.
- the combination of at least one spherical shoe 7 - 9 having a flat guide surface sliding along a corresponding gib operates as an easy means for eliminating eccentric force and slide misalignment.
- the present design allows easy adaptation to a variety of production sizes, processing needs, and temperature gradients all while maintaining high precision, simple manufacture, and simple assembly.
- the present design also easily compensates for eccentric forces placed on the slide during regular operation.
- the spherical shoes, corresponding cavities, and angular gib faces easily compensate for any eccentric force and maintain parallel operation. As a result, equipment life is extended, maintenance costs reduced, and on-stream time maximized.
- a nail, a screw, and a bolt may not be structural equivalents in that a nail relies entirely on friction between a wooden part and a cylindrical surface, a screw's helical surface positively engages the wooden part, and a bolt's head and nut compress opposite sides of at least one wooden part, in the environment of fastening wooden parts, a nail, a screw, and a bolt may be readily understood by those skilled in the art as equivalent structures.
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Abstract
Description
- 1. Field of the Invention
- The present invention relates to a slide guide device for a press. More specifically, the present invention relates to a slide guide device that guides a slide with high precession during pressing operations.
- 2. Description of the Related Art
- Conventionally, a press includes a slide. A copper alloy liner serves as a slide surface. The press includes an iron gib disposed on a frame opposite the slide surface. During operation, the liner and the gib slide against each other to guide the slide along the frame.
- Clearance between the liner and its facing gib is approximately 5/100 mm. Typically, a lubricating oil lubricates the sliding surfaces. The lubricating oil forms an oil membrane between the liner and the gib to minimize friction and wear.
- Unfortunately, eccentric forces frequently occur in the press. These eccentric forces force the liner and gib to form ‘line contacts.’ Line contacts occur when failure of the lubricating oil membrane permits direct sliding contact to occur. Direct contact wears and scorches the sliding surfaces and increases the mechanical resistance to be overcome by the press motor. If not remedied, the line contacts cause motor failure and costly equipment damage.
- Additionally, the clearance required to maintain an oil membrane is detrimental to high-precision goals. In particular with large high-precision presses with eccentric loads, the large slides maximize pressure with resulting detrimental line contacts. Conventionally, this detrimental effect is partially ameliorated through use of “two-point” and “four-point” press designs.
- “Two-point” and “four-point” presses require costly precision construction. Production of precision parts is difficult, costly, and time consuming. Ultimately, no matter how precise the construction, eccentric loads may still cause line contacts between the liner and the gib.
- The applicant's previously filed Japanese patent application number 2000-193782 partially overcomes this difficulty using a spherical surface block and a gib sliding against each other along a liner that has a V-shaped sliding surface. Unfortunately, aligning the V shape of the spherical surface block and the gib is difficult. Despite this design, ultimately during high loads the V-shaped surface of the spherical surface block spreads, causing damaging contact, costly repair and downtime.
- An object of the present invention is to provide a slide guide device for a press that overcomes the problems and difficulties described above.
- It is another object of the present invention to provide a slide guide device which improves uniform contact along each sliding surface.
- It is another object of the present invention to provide a slide guide device which improves pressing precision and accuracy.
- It is another object of the present invention to provide a slide guide device which compensates for eccentric forces during pressing and eliminates eccentric contact between each sliding surface.
- It is another object of the present invention to provide a slide guide device that employs a gib structure using a rotatable element to maintain uniform contact between each sliding surface.
- It is another object of the present invention to provide a slide guide device that is easily adjustable to set and fix an optimum gap between sliding surfaces.
- It is another object of the present invention to provide a slide guide device which compensates for both lateral and eccentric loads during pressing operations and allows for simple assembly.
- It is another object of the present invention to provide a slide guide device which has the foregoing features and capabilities.
- The present invention relates to a slide guide device for a press which guides a slide in a cycle. The slide guide device eliminates misalignment caused by eccentric forces and prevents eccentric contact between the slide and a gib. The slide includes at least a first spherical shoe having at least a first guide surface. The gib includes at least a first sliding surface opposite the first guide surface. During operation, the spherical shoe rotates relative to the slide to ensure close alignment between the first guide surface and the sliding surface. A wedge supporting the gib allows rapid and easy alignment with the slide.
- According to an embodiment of the present invention there is provided a slide guide device for a press machine, comprising: a slide, at least a first cavity on a first side of the slide, at least a first interface element, first means for rotatably retaining the first interface element in the first cavity, at least a first contact surface on the first interface element, at least a first gib opposite the slide and the first cavity, at least a first slide surface on the first gib, and first means for rotatably aligning the first contact surface with the first slide surface guiding and aligning the slide with the first gib during a cycle, thereby preventing an eccentric slide misalignment during the cycle and increasing press precision.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, further comprising: at least a second cavity on a second side the slide, at least a second interface element, second means for rotatably retaining the second interface element in the second cavity, at least a second contact surface on the second interface element, at least a second gib opposite the slide and the second cavity, at least a second slide surface on the second gib, and second means for rotatably aligning the second contact surface with the second slide surface guiding and aligning the slide with the second gib during the cycle, thereby preventing the eccentric slide misalignment and increasing the press precision.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, further comprising: at least a first clearance between the first contact surface and the first slide surface, at least a second clearance between the second contact surface and the second slide surface, and means for slidably adjusting and fixing the first and the second clearance and retaining each respective the first and the second clearance at a selected optimum clearance thereby maintaining alignment of the slide easily guiding the slide in the cycle.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the means for slidably adjusting and fixing includes the first gib, the first gib has at least a first wedge shape, at least a first support element in the means for slidably adjusting and fixing, the first support element between the first gib and a frame of the press machine, the first support element has a second wedge shape, the second wedge shape complementary to the first wedge shape, the first support element adjustable along the frame and fixable relative to the first gib and the frame, and the means for slidably adjusting and fixing effective to slide the first support element relative to the first gib and the frame, create the optimum clearance, and fix the first and the second clearance at the optimum clearance, whereby the slide easily maintains the optimum clearance during the cycle.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the at least first contact surface and the at least first slide surface are flat, the at least second contact surface and the at least second slide surface are flat, the first slide surface at a first angle to an axis of the slide, the axis extending linearly from the first gib, through the slide, to the second gib, and the second slide surface at a second angle to the axis of the slide.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the first slide surface is perpendicular to the axis, and the second slide surface is perpendicular to the axis.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, further comprising: at least a third cavity on the first side of the slide, at least a third interface element, the first means for rotatably retaining also rotatably retaining the third interface element in the third cavity, at least a third contact surface on the third interface element, the first gib opposite the first and the third cavity, at least a third slide surface on the first gib, and the first means for rotatably aligning also rotatably aligning the third contact surface with the third slide surface during the cycle, thereby preventing the eccentric slide misalignment and a lateral slide misalignment during the cycle.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, further comprising: at least a fourth cavity on the second side of the slide, at least a fourth interface element, the second means for rotatably retaining also rotatably retaining the fourth interface element in the fourth cavity, at least a fourth contact surface on the fourth interface element, the second gib opposite the second and the third cavity, at least a fourth slide surface on the second gib, and the second means for rotatably aligning also rotatably aligning the fourth contact surface with the fourth slide surface during the cycle, thereby preventing the eccentric slide misalignment and the lateral slide misalignment during the cycle.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, further comprising: at least a third clearance between the third contact surface and the third slide surface, at least a fourth clearance between the fourth contact surface and the fourth slide surface, and means for slidably adjusting and fixing including means for slidably adjusting and fixing the third and the fourth clearance and retaining each respective the third and the fourth clearance at the selected optimum clearance thereby maintaining alignment of the slide in the cycle.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the at least third contact surface and the at least third slide surface are flat, the at least fourth contact surface and the at least fourth slide surface are flat, the first slide surface and the third slide surface at a third angle to the axis of the slide, and the second slide surface and the fourth slide surface at a fourth angle to the axis of the slide.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the third angle is a first acute angle, and the fourth angle is a second acute angle.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the third angle is a first obtuse angle, and the fourth angle is a second obtuse angle.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the first contact surface is at a first 120-degree angle to the third contact surface, and the second contact surface is at a second 120-degree angle to the fourth contact surface.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the first and the second 120-degree angles project away from the slide along the axis.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the first and the second 120-degree angles project toward the slide along the axis.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, further comprising: at least a fifth contact surface on the first interface element, the first contact surface at a third obtuse angle to the fifth contact surface, at least a sixth contact surface on the second interface element, the second contact surface at a fourth obtuse angle to the sixth contact surface, a fifth slide surface on the first gib opposite the fifth contact surface, a sixth slide surface on the second gib opposite the sixth contact surface, the first means for rotatably aligning also including means for simultaneously and rotatably aligning the fifth contact surface with the fifth slide surface, and the second means for rotatably aligning also including means for simultaneously and rotatably aligning the sixth contact surface with the sixth slide surface.
- According to another embodiment of the present invention there is provided a slide guide device for a press machine, wherein: the third obtuse angle is 120 degrees, and the fourth obtuse angle is 120 degrees.
- The above, and other objects, features and advantages of the present invention will become apparent from the following description read in conjunction with the accompanying drawings, in which like reference numerals designate the same elements.
- FIG. 1 is a front view of a press.
- FIG. 2 is a horizontal cross-section of a gib in a first embodiment of the present invention.
- FIG. 3 is a horizontal cross-section of a gib in a second embodiment.
- FIG. 4 is a detail drawing of a gib section in the second embodiment.
- FIG. 5 is a horizontal cross-section of a gib in a third embodiment.
- FIG. 6 is a detail drawing of a gib section in a third embodiment.
- FIG. 7 is a horizontal cross-section of a gib in a fourth embodiment.
- FIG. 8 is a detail drawing of a gib section in a fourth embodiment.
- Referring now to FIGS. 1 and 2, a
press 50 includes aframe 1.Frame 1 supports abed 51.Frame 1 includes a left side frame and a right side frame (both not numbered). A pair ofstays 19 join the left side frame and the right side frame. Stays 19 provide additional stability to press 50 during operation. - A bolster 3 is disposed on
bed 51 oppositeslide 2 a. Aslide 2 a is slidably operable alongframe 1 relative to bolster 3 and tobed 51.Slide 2 a is connected to a connecting rod 4 and a crank shaft (not shown). Connecting rod 4 and the crank shaft form a crank mechanism for operatingslide 2 a. During operation, the crank mechanism reciprocatesslide 2 a relative to bolster 3. - Stays 19
join frame 1 at a point roughly midway in a range of vertical motion ofslide 2 a. During pressing, stays 19 prevent deformation and torsion offrame 1. - A pair of
gibs 5 a, 6 a onframe 1 are located on respective left and right side frame members oppositeslide 2 a. 7, 8, 9, 10 are disposed onSpherical shoes slide 2 a, as will be explained. 7, 8 andSpherical shoes gib 5 a are on a first side ofslide 2 a. 9, 10 and gib 6 a are on the second side ofSpherical shoes slide 2 a. During operation, gibs 5 a, 6 a engage respective 7, 8, 9, 10 to guidespherical shoes slide 2 a upward and downward onframe 1. - A pair of
13, 14 ongib holders frame 1secure gib 5 a relative to slide 2 a, as will be explained. - An
engagement section 13 a is ongib holder 13. Anengagement section 14 a is ongib holder 14. 13 a, 14 a engage respective grooves (shown but not numbered) onEngagement sections frame 1. 13 a, 14 a alignEngagement sections 13, 14 torespective gib holders frame 1. Bolts (not shown) 13, 14 tosecure gib holders frame 1. - A
hollow screw 15′ is screwed intogib holder 13. Ahollow screw 15″ is screwed intogib holder 14. Abolt 16′ extends throughhollow screw 15′. Abolt 16″ extends throughhollow screw 15″.Bolts 16′, 16″ securehollow screws 15′, 15″ to 13, 14.respective gib holders - An end of
bolt 16″ extends throughhollow screw 15″ ingib holder 14. Awedge 12 threadably engages the end ofbolt 16″.Bolt 16″ slidably retainswedge 12 relative to 13,14. During assembly or adjustment,gib holders hollow screw 15″ andbolt 16″ threadably control andposition wedge 12 relative togib holder 14. - An end of
bolt 16′ extends throughhollow screw 15′ ingib holder 13.Gib 5 a threadably engages the end ofbolt 16′.Bolt 16′ slidably retainsgib 5 a relative to gibeholder 13. During assembly or adjustment,hollow screw 15′ and bolt 16′ threadably control andposition gib 5 a relative togib holder 13. -
Wedge 12, betweengib 5 a andframe 1, has a tapered shape that matches a tapered shape ofgib 5 a.Wedge 12 supports gib 5 a.Wedge 12 andgib 5 a slidably engage and allow easy adjustment ofgib 5 a relative to slide 2 a. After assembly and adjustment,bolts 17secure wedge 12 andgib 5 a toframe 1. - A
liner 11 is secured with at least one screw (not shown) on an outer surface ofgib 5 a betweengib 5 a andslide 2 a.Liner 11 is typically a Teflon-based impregnated porous bi-metal, but may be any convenient wear resistant and slippery material. In this embodiment,liner 11 is plate-shaped affixed vertically alonggib 5 a. - At least one
spherical cavity 18 is onslide 2 aopposite gib 5 a.Spherical cavity 18 has a concave hemispheric shape.Spherical shoe 7 is positioned inspherical cavity 18.Spherical shoe 7 has a convex hemispheric section which matches the concave hemispheric shape ofspherical cavity 18. -
Spherical shoe 7 has a flat section opposite the hemispheric section. During assembly, the flat section ofspherical shoe 7contacts liner 11. During operation, the flat section ofspherical shoe 7slidably contacts liner 11. During operation, when eccentric forces occur, the hemispheric section ofspherical shoe 7 adjusts relative tospherical cavity 18 to maintain the flat section parallel toliner 11 andgib 5 a, thereby eliminating line contacts. - Gib 6 a is fixed relative to frame 1. In combination,
gib 5 a and gib 6 a increase the operational precision ofpress 50 and guide slide 2 a during a slide cycle. - An
engagement section 14 a′ on gib 6 a fits into at least one groove formed (shown but not numbered) inframe 1. During assembly, at least oneadditional bolt 17 secures gib 6 a toframe 1. - Gibs 5 a, 6 a each include two comer guide surfaces (shown but not numbered) opposite
slide 2 a. The guide surfaces ongib 5 a are opposite two respective comers ofslide 2 a. The guide surfaces on gib 6 a are opposite the respective other two comers ofslide 2 a. During operation, the four comers ofslide 2 a operate parallel to their respective comer guide surface ofgibs 5 a, 6 a. - A set of
shoes 23 is affixed to slide 2 a on each comer ofslide 2 a.Shoes 23 are opposite respective comer guide surface on gibs 5 a, 6 a. In the first embodiment of the present invention, slide 2 a is easily and guidably restrained along a left/right axis by 7, 8, 9, and 10, and along a forward/back axis by shoes 23. As a result, precision operation is easily achieved without increased operational costs or the need for precision machining.spherical shoes - During assembly,
bolt 17 secures gib 6 a toframe 1. 7, 8, 9, and 10 are installed within theirSpherical shoes respective cavities 18 on opposite sides ofslide 2 a. The now-assembledslide 2 a is placed inframe 1 along gib 6 a.Wedge 12 andgib 5 a are assembled opposite slide 2.Wedge 12 andgib 5 a are positioned and adjusted using respectivehollow screws 15′, 15″ andbolts 16′, 16″ while maintaining even contact betweenliners 11 and 7, 8, 9, and 10. Finally, after positioning and adjusting,spherical shoes additional bolts 17secure wedge 12 andgib 5 a toframe 1. - Referring now to FIGS. 3 and 4 a second alternative embodiment of the present invention includes a
gib holder 14′ and 13, 14.gib holders Engagement section 13 a is located ongib holder 13.Engagement section 14 a is located ongib holder 14. Anengagement section 14 a″ is located ongib holder 14′. -
13 a, 14 a engage groves (shown but not numbered) on one side ofEngagement sections frame 1. 13 a, 14 a alignEngagement sections 13, 14 torespective gib holders frame 1. 13, 14 align and support aGib holders gib 5 b, relative to frame -
Engagement section 14 a″ alignsgib holder 14′ withframe 1.Gib holder 14′ aligns and supports agib 6 b relative to frame 1. During operation, 5 b, 6 b precisely and reliably guidegibs slide 2 b alongframe 1, as will be explained. -
Engagement section 14 a″ engages an engagement groove (shown but not numbered) onframe 1 opposite 13 a, 14 a. Aengagement sections hollow screw 15″′ threadably engagesgib holder 14′. Abolt 16″′ is inserted intohollow screw 15″′. An end ofbolt 16″′ threadably engagesgib 6 b to allow adjustment ofgib 6 b relative to frame 1. After adjustment, at least onebolt 17fixes gib 6 b to frame 1. - An abutting section 6 a′ on
frame 1 oppositegib 6 b resists pressure frombolt 16″′ and supportsgib 6 b during assembly and operation. - In this embodiment,
hollow screw 15′ is screwed intogib holder 13.Hollow screw 15″ is screwed intogib holder 14.Bolt 16′ is inserted intohollow screw 15′.Bolt 16″ is inserted intohollow screw 15″. - An end of
bolt 16′ screws intowedge 12 to joingib holder 13 to wedge 12. During assembly, an end ofhollow screw 15′ helps to positionwedge 12.Bolt 16′ secureshollow screw 15′ togib holder 13. In combination,hollow screw 15′ and bolt 16′secure wedge 12 relative togib holder 13. - An end of
bolt 16″ is screwed intogib 5 b to joingib holder 14 togib 5 b. During assembly, an end ofhollow screw 15″ positions gib 5 b.Bolt 16″ secureshollow screw 15″ togib 5 b. In combination,hollow screw 15″ andbolt 16″secure gib 5 b relative togib holder 14,wedge 12 andslide 2 b. Oncewedge 12 andgib 5 b are positioned, at least onebolt 17 securesgib 5 b andwedge 12 toframe 1. - A first pair of liners, 11, 11 are secured to
gib 5 b oppositeslide 2 b. A second pair of liners (not shown) is secured togib 6 b in a similar manner. 11, 11 have plate-like shapes and are vertically affixed alongLiners 5 b, 6 b.gibs - Each
5 b, 6 b has two contact surfaces extending parallel alonggib slide 2 b.Liners 11 are located on the respective contact surface along 5 b and 6 b.gib Slide 2 b has contact surfaces corresponding to the contact surfaces on 5 b, 6 b. The contact surfaces ongibs 5 b, 6 b and slide 2 b slide parallel to each other to allow easy and precise movement ofgibs slide 2 b. - In this embodiment, pairs of
7, 7 and 9, 9 rotatably fit within correspondingspherical shoes spherical cavities 18 onslide 2 b. The flat sections of 7, 7spherical shoes contact liners 11 ongib 5 b and slide freely. The flat sections of 9, 9 similarly contactspherical shoes liners 11 ongib 6 b and slides freely. The spherical surface of 7, 7, and 9, 9 rotate withinspherical shoes cavities 18 to allow the entire surface of their respective flat sections to remain parallel to theirrespective liners 11. - During assembly, the pairs of
7, 8, 9, 10 are fitted into correspondingspherical shoes cavities 18 onslide 2 b.Gib 6 b is adjusted and fixed toframe 1. Slide 2 is placed inframe 1.Wedge 12 andgib 5 b are assembled, positioned, and adjusted usinghollow screws 15′, 15″ andbolts 16′, 16″ while observing the contact betweenliners 11 and respective 7, 8, 9, and 10. After adjustment,spherical shoes bolts 17secure wedge 12 andgib 5 b to frame 1. - The contact surfaces on
5 b, 6 b correspond to the surfaces of each pair ofgibs 11, 11. An angle alpha (α) is an angle between the contact surface (and of the liners 11). Angle alpha (α) is selected based upon the state of eccentric loads during pressing operations.liners - During operation, pressure (force) from
slide 2 b passes through respective 7, 8, 9, and 10 and is transferred to the contact surface ofspherical shoes liners 11. - The forces acting on each contact surface can be analyzed, based on the slope of the contact surface. The forces can be broken down into a force providing restriction along a left-right axis of
slide 2 b and a force providing restriction along a forward-backward axis ofslide 2 b. Thus, slide 2 b is restricted along the left-right axis and the forward-backward axis by gibs Sb, 6 b. - In the present embodiment, angle alpha (α) is approximately 120 deg. In this embodiment, the eccentric load along the left-right axis of
slide 2 b is larger than the eccentric load along the front-back axis. In other words, the projected area along the left-right axis of the guide surfaces is greater than that along the front-back axis. If angle alpha (α) is 120 deg, the cosine and sine functions indicate that the ratio of projected areas is {square root}3 (square root of 3): 1, i.e., approximately 1.7:1. - Referring now to FIGS. 5 and FIG. 6, a third embodiment of the present invention includes a pair of
gibs 5 c, 6 c. Gibs 5 c, 6 c have a generally concave shape relative to aslide 2 c. As above,gibs 5 c, 6 c guide aslide 2 c during pressing operations. - It should be noted that the difference between the second and the third embodiments of the present invention is that
2 b, 2 c have opposite (convex/concave) shapes relative to respective supportingrespective slides 5 b, 6 b and 5 c, 6 c. There are no other structural differences.gibs - In the third embodiment, angle alpha (α) between
11, 11 is also approximately 120 deg. During operation, where there is little temperature difference betweenrespective liners slide 2 c andgibs 5 c, 6 c, there is little beneficial difference between the second and the third embodiments. - However, a benefit does exist in the second embodiment when
slide 2 c reaches a temperature higher than a temperature ofgibs 5 c, 6 c. Such a temperature difference permits thermal deformation ofslide 2 c that is greater than a thermal deformation ofgibs 5 c, 6 c. In conditions of thermal anisotropy, the second embodiment provides greater compensation for thermal deformation. As a result, the present invention is easily adaptable to both precision pressing operations and variable operating environments. - Referring now to FIGS. 7 and 8, a fourth embodiment of the present invention includes a
slide 2 d operating between a pair of 5 d, 6 d.gibs - A pair of
17, 17 securesbolt 5 d, 6 d to frame 1 on opposite sides ofrespective gib slide 2 d. A set of screws (not shown) secure a set of 11, 11 toliners gib 6 d. Another set of screws (not shown) secure a second set of 11, 11 toliners gib 5 d. Abolt 22 secures each 21, 21 to each side ofblock slide 2 d opposite 5 d, 6 d.respective gibs -
18, 18 are disposed inSpherical cavities 21, 21. Arespective blocks spherical shoe 20 rotatably fits within eachblock 21. A flat sections on each 20, 20 allows sliding contact withspherical shoe 11, 11 on eachrespective liners 5 d, 6 d, as will be explained.gib - In this embodiment,
5 d, 6 d andgibs wedge 12 are narrower than in the previous embodiments. Similarly, 13, 14 are smaller in overall dimension. In the fourth embodiment,gib holders gib 6 d sits in a groove (shown but not numbered) inframe 1. Asingle bolt 17 threadably securesgib 6 d to frame 1 opposite slid 2 d. Asingle bolt 17 similarly secures and fixeswedge 12 andgib 5 d to frame 1. - An assembly method for the fourth embodiment is similar to the assembly methods for the second and third embodiments. During assembly of the fourth embodiment,
22, 22 securebolts 21, 21 to slide 2 d.respective blocks 20, 20 are then inserted intoSpherical shoes 18, 18. Gib 6 is secured torespective cavities frame 1 and receives the assembledslide 2 d. 13, 14,Gib holders wedge 12 and gib 5 are installed and adjusted. After adjustment,bolts 17secure wedge 12 andgib 5 d to frame 1. - During operation,
5 d, 6 d are formed in a general ‘V-shape.’ Agibs liner 11 is positioned on each side of the V-shape. Eachshoe 20 provides two corresponding contact surfaces opposite eachliner 11. An angle beta (β) is defined between each side of the V-shape. Angle beta (β) is approximately 120 degrees. - As an advantage, each
shoe 20 replaces previous multiple shoes thereby reducing cost while maintaining precision. In other words, the multiple spherical shoes from the second and the third embodiments are moved as close together as possible and combined. - The fourth embodiment is particularly advantageous for providing precision operations where space is limited and
press 50 or aslide 2 d must be small. - In each embodiment discussed above, the combination of at least one spherical shoe 7-9 having a flat guide surface sliding along a corresponding gib operates as an easy means for eliminating eccentric force and slide misalignment.
- The simple rotation of respective spherical shoes easily maintains planar contact between
respective liners 1 1 and the contact surfaces of respective shoes. This design prevents the formation of line contacts, the breakdown of lubrication and minimizes scorching, scoring and equipment failure. - As an additional benefit to the present design, since gibs are easily adjusted to a clearance of roughly zero, high precision is easily achieved with no need for a strengthening guide post (not shown) on a die (not shown).
- The present design allows easy adaptation to a variety of production sizes, processing needs, and temperature gradients all while maintaining high precision, simple manufacture, and simple assembly.
- The present design also easily compensates for eccentric forces placed on the slide during regular operation. According to the present invention, the spherical shoes, corresponding cavities, and angular gib faces easily compensate for any eccentric force and maintain parallel operation. As a result, equipment life is extended, maintenance costs reduced, and on-stream time maximized.
- Although only a single or few exemplary embodiments of this invention have been described in detail above, those skilled in the art will readily appreciate that many modifications are possible in the exemplary embodiment(s) without materially departing from the novel teachings and advantages of this invention. Accordingly, all such modifications are intended to be included within the spirit and scope of this invention as defined in the following claims. In the claims, means-plus-function clauses are intended to cover the structures described or suggested herein as performing the recited function and not only structural equivalents but also equivalent structures. Thus, for example, although a nail, a screw, and a bolt may not be structural equivalents in that a nail relies entirely on friction between a wooden part and a cylindrical surface, a screw's helical surface positively engages the wooden part, and a bolt's head and nut compress opposite sides of at least one wooden part, in the environment of fastening wooden parts, a nail, a screw, and a bolt may be readily understood by those skilled in the art as equivalent structures.
- Having described preferred embodiments of the invention with reference to the accompanying drawings, it is to be understood that the invention is not limited to those precise embodiments, and that various changes and modifications may be effected therein by one skilled in the art without departing from the scope or spirit of the invention as defined in the appended claims.
Claims (18)
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2000-355350 | 2000-11-22 | ||
| JP2000355350A JP3810269B2 (en) | 2000-11-22 | 2000-11-22 | Slide guide device for press machine |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| US20020061144A1 true US20020061144A1 (en) | 2002-05-23 |
| US6764218B2 US6764218B2 (en) | 2004-07-20 |
Family
ID=18827774
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US09/993,052 Expired - Lifetime US6764218B2 (en) | 2000-11-22 | 2001-11-06 | Slide guide device for presses |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US6764218B2 (en) |
| EP (2) | EP2261016B1 (en) |
| JP (1) | JP3810269B2 (en) |
| CA (1) | CA2362060C (en) |
| DE (1) | DE60144085D1 (en) |
| TW (1) | TW544349B (en) |
Cited By (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20060233474A1 (en) * | 2005-04-19 | 2006-10-19 | Smc Kabushiki Kaisha | Guide mechanism for cylinder apparatus |
| US20090208150A1 (en) * | 2008-02-20 | 2009-08-20 | Aida Engineering, Ltd. | Slide guide apparatus of press machine |
| CN102161239A (en) * | 2010-12-22 | 2011-08-24 | 中国福马机械集团有限公司 | Continuous press |
| CN105729870A (en) * | 2016-05-04 | 2016-07-06 | 东莞市国一精密机械有限公司 | A punch slider mechanism |
| CN113231590A (en) * | 2021-04-30 | 2021-08-10 | 天津市天锻压力机有限公司 | Magnesium alloy hub forging hydraulic press |
Families Citing this family (13)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP3913598B2 (en) | 2002-04-16 | 2007-05-09 | アイダエンジニアリング株式会社 | Slide guide device for press machine |
| US7013800B2 (en) * | 2003-07-30 | 2006-03-21 | Aida Engineering Co., Ltd | Mechanical press |
| CN100415497C (en) * | 2003-08-13 | 2008-09-03 | 曾田工程技术有限公司 | Mechanical press |
| JP4852480B2 (en) * | 2007-06-11 | 2012-01-11 | 三協オイルレス工業株式会社 | Push-up cam device |
| JP4812718B2 (en) * | 2007-09-18 | 2011-11-09 | アイダエンジニアリング株式会社 | Mold for cam device and press machine |
| US8573846B2 (en) * | 2010-05-05 | 2013-11-05 | Deere & Company | Bearing arrangement for a telescopic axle |
| EP2666583B1 (en) * | 2012-05-24 | 2015-01-21 | Trumpf Sachsen GmbH | Motion unit of a machine tool and machine tool with such a motion unit |
| CN103302890A (en) * | 2013-06-26 | 2013-09-18 | 合肥海德数控液压设备有限公司 | Slide block guide adjusting device of framework hydraulic press |
| CN105344913A (en) * | 2015-11-25 | 2016-02-24 | 南通皋液液压机有限公司 | Frame type hydraulic machine guiding structure special for hot press forging of high-speed rail part |
| CN106180379B (en) * | 2016-07-12 | 2018-12-14 | 广东西江电梯有限公司 | A kind of combined open-type inclinable press |
| CN106040839A (en) * | 2016-07-12 | 2016-10-26 | 广东西江电梯有限公司 | Double-column inclinable press with adjustable center |
| US11673359B2 (en) | 2019-01-28 | 2023-06-13 | James Stong | Securement device for a press tool |
| USD930720S1 (en) | 2019-10-02 | 2021-09-14 | James Stong | Clamp device for a press |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3568498A (en) | 1969-01-24 | 1971-03-09 | Pacific Press & Shear Corp | Guide system for rams in press brakes and the like |
| DE2218438A1 (en) | 1972-04-17 | 1973-10-31 | Dorst Keramikmasch | PRESS, IN PARTICULAR FOR THE MANUFACTURE OF PRESS SLINGS FROM CERAMIC MATERIAL |
| JPS5441156B2 (en) * | 1973-11-10 | 1979-12-06 | ||
| DE2631598A1 (en) * | 1976-07-14 | 1978-01-19 | Kaiser Kg Otto | Guide for unevenly loaded press ram - has rectangular section guide rods mounted in frame with largest area at heaviest loaded region |
| US4161342A (en) | 1977-12-05 | 1979-07-17 | Gulf & Western Manufacturing Company | Anti-friction gibs for presses |
| EP0360875B1 (en) | 1988-09-02 | 1991-05-29 | Gräbener Pressensysteme GmbH & Co. KG | Forming machine, in particulier a mechanical press |
| DE3935787A1 (en) | 1989-10-27 | 1991-05-02 | Beche & Grohs Gmbh | Spindle press with adjustable sliding clearance for ram - which is provided by hydraulic pistons which can be locked in required position |
| JPH0966399A (en) * | 1995-08-31 | 1997-03-11 | Asahi Seiki Kogyo Kk | Jib structure of slide guide for metal press |
| JP3281325B2 (en) | 1998-12-28 | 2002-05-13 | 株式会社グローバル・ニュークリア・フュエル・ジャパン | Helium leak inspection method and apparatus for nuclear fuel rods |
| JP2000288799A (en) | 1999-04-06 | 2000-10-17 | Aida Eng Ltd | Slide guiding device and press using the same |
| JP3913598B2 (en) * | 2002-04-16 | 2007-05-09 | アイダエンジニアリング株式会社 | Slide guide device for press machine |
-
2000
- 2000-11-22 JP JP2000355350A patent/JP3810269B2/en not_active Expired - Lifetime
-
2001
- 2001-11-06 US US09/993,052 patent/US6764218B2/en not_active Expired - Lifetime
- 2001-11-08 CA CA002362060A patent/CA2362060C/en not_active Expired - Lifetime
- 2001-11-12 DE DE60144085T patent/DE60144085D1/en not_active Expired - Lifetime
- 2001-11-12 EP EP10178765.3A patent/EP2261016B1/en not_active Expired - Lifetime
- 2001-11-12 EP EP01126877A patent/EP1208964B1/en not_active Expired - Lifetime
-
2002
- 2002-02-05 TW TW091102010A patent/TW544349B/en not_active IP Right Cessation
Cited By (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20060233474A1 (en) * | 2005-04-19 | 2006-10-19 | Smc Kabushiki Kaisha | Guide mechanism for cylinder apparatus |
| US7490991B2 (en) * | 2005-04-19 | 2009-02-17 | Smc Kabushiki Kaisha | Guide mechanism for cylinder apparatus |
| US20090208150A1 (en) * | 2008-02-20 | 2009-08-20 | Aida Engineering, Ltd. | Slide guide apparatus of press machine |
| US8109673B2 (en) * | 2008-02-20 | 2012-02-07 | Aida Engineering, Ltd. | Slide guide apparatus of press machine |
| CN102161239A (en) * | 2010-12-22 | 2011-08-24 | 中国福马机械集团有限公司 | Continuous press |
| CN105729870A (en) * | 2016-05-04 | 2016-07-06 | 东莞市国一精密机械有限公司 | A punch slider mechanism |
| CN113231590A (en) * | 2021-04-30 | 2021-08-10 | 天津市天锻压力机有限公司 | Magnesium alloy hub forging hydraulic press |
Also Published As
| Publication number | Publication date |
|---|---|
| EP2261016A3 (en) | 2013-03-06 |
| DE60144085D1 (en) | 2011-04-07 |
| EP2261016B1 (en) | 2014-04-02 |
| CA2362060A1 (en) | 2002-05-22 |
| EP2261016A2 (en) | 2010-12-15 |
| JP2002153998A (en) | 2002-05-28 |
| JP3810269B2 (en) | 2006-08-16 |
| EP1208964A2 (en) | 2002-05-29 |
| US6764218B2 (en) | 2004-07-20 |
| EP1208964A3 (en) | 2002-12-04 |
| TW544349B (en) | 2003-08-01 |
| CA2362060C (en) | 2009-09-29 |
| EP1208964B1 (en) | 2011-02-23 |
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